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An interpolation-based approach to multi-parameter performance modeling for heterogeneous systems

机译:基于内相系统的多参数性能建模的基于插值的方法

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To effectively optimize applications for emerging heterogeneous architectures, compilers and synthesis tools must perform the challenging task of estimating the performance of different implementations and optimizations for different numbers and types of computational resources. Many performance-prediction techniques exist, but those approaches are specific to particular resources or applications, and are often not capable of prediction for all combinations of inputs. In this paper, we introduce an approach to multi-parameter performance modeling based on sampling and interpolation. This approach can be used in conjunction with execution time data, simulated or observed, to quickly perform performance estimation for any function, on any resource, with any combination of inputs. By evaluating a Kriging-based interpolator on a variety of functions and computational resources, we determine bounds on the accuracy of this approach, and show that an interpolation-based approach utilizing Kriging can effectively model execution time for most applications. We also show that Kriging is a highly effective interpolation technique for execution time, and can be up to four orders of magnitude more accurate than nearest-neighbor interpolation or radial basis function interpolation.
机译:为了有效地优化新兴异构架构的应用,编译器和综合工具必须执行估计不同数量和类型的不同数量和类型的不同实现和优化性能的具有挑战性的任务。存在许多性能预测技术,但这些方法是特定于特定资源或应用的方法,并且通常不能对输入的所有组合预测。在本文中,我们介绍了一种基于采样和插值的多参数性能建模方法。这种方法可以与执行时间数据一起使用,模拟或观察,以便在任何资源上快速对任何资源进行任何功能的性能估计,其中包含输入的任何组合。通过在各种功能和计算资源上评估基于Kriging的内插器,我们确定了这种方法的准确性的界限,并表明利用Kriging的基于插值的方法可以有效地为大多数应用程序进行模型执行时间。我们还表明,克里格是执行时间的高效插值技术,可以达到数量级比近邻插值或径向基函数插值更精确的四个数量级。

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